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胆盐聚集体不同区域的飞秒溶剂化动力学:激发波长依赖性

Femtosecond solvation dynamics in different regions of a bile salt aggregate: excitation wavelength dependence.

作者信息

Adhikari Aniruddha, Dey Shantanu, Mandal Ujjwal, Das Dibyendu Kumar, Ghosh Subhadip, Bhattacharyya Kankan

机构信息

Physical Chemistry Department, Indian Association for the Cultivation of Science, Jadavpur, Kolkata 700 032, India.

出版信息

J Phys Chem B. 2008 Mar 20;112(11):3575-80. doi: 10.1021/jp7106445. Epub 2008 Feb 27.

Abstract

Solvation dynamics of coumarin 480 (C480) in the secondary aggregate of a bile salt (sodium deoxycholate, NaDC) is studied using femtosecond up-conversion. The secondary aggregate resembles a long (approximately 40 A) hollow cylinder with a central water-filled tunnel. Different regions of the aggregate are probed by variation of the excitation wavelength (lambdaex) from 375 to 435 nm. The emission maximum of C480 displays an 8 nm red shift as the lambdaex increases from 345 to 435 nm. The 8 nm red edge excitation shift (REES) suggests that the probe (C480) is distributed over regions of varied polarity. Excitation at a short wavelength (375 nm) preferentially selects the probe molecule in the buried locations and exhibits slow dynamics with a major (84%) slow component (3500 ps) and a small (16%) contribution of the ultrafast component (2.5 ps). Excitation at lambdaex=435 nm (red end) corresponds to the exposed sites where solvation dynamics is very fast with a major (73%) ultrafast component (<or=2.5 ps) and relatively minor (27%) slow (2000 ps) component. In sharp contrast to solvation dynamics, the anisotropy decay becomes slower as lambdaex increases from 375 to 435 nm. It is proposed that the buried locations (lambdaex=375 nm) offer lower friction because of the rigid sheetlike structure of the bile salt.

摘要

采用飞秒上转换技术研究了香豆素480(C480)在胆汁盐(脱氧胆酸钠,NaDC)二次聚集体中的溶剂化动力学。二次聚集体类似于一个长约40埃的中空圆柱体,中间有一个充满水的隧道。通过将激发波长(λex)从375nm变化到435nm来探测聚集体的不同区域。随着λex从345nm增加到435nm,C480的发射最大值出现8nm的红移。8nm的红边激发位移(REES)表明探针(C480)分布在极性不同的区域。短波长(375nm)激发优先选择埋入位置的探针分子,表现出缓慢的动力学,主要是(84%)慢成分(3500ps),超快成分(2.5ps)贡献较小(16%)。λex=435nm(红色端)激发对应于暴露位点,此处溶剂化动力学非常快,主要是(73%)超快成分(≤2.5ps),相对较小(27%)慢成分(2000ps)。与溶剂化动力学形成鲜明对比的是,随着λex从375nm增加到435nm,各向异性衰减变得更慢。有人提出,由于胆汁盐的刚性片状结构,埋入位置(λex=375nm)提供的摩擦力较低。

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